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3D Printable Hydrogel Based on TEMPO-Oxidized Cellulose Nanofibrils and Fmoc-FF for Enhanced Biological Performance and Cell Adhesion

  • Dhanya Raveendran
  • , Feras Dalloul
  • , J. Benedikt Mietner
  • , Enguerrand Barba
  • , Shouzheng Chen
  • , Daria Zaytseva-Zotova
  • , Benedikt Sochor
  • , Sarathlal Koyiloth Vayalil
  • , Peter Müller-Buschbaum
  • , Hanna Tiainen
  • , Stephan V. Roth
  • , Julien R.G. Navarro
  • Universität Hamburg
  • Deutsches Elektronen-Synchrotron (DESY)
  • Technical University of Munich
  • University of Oslo
  • Advanced Light Source, Berkeley
  • University of Petroleum and Energy Studies
  • Center for Autonomous Systems

Research output: Contribution to journalArticlepeer-review

2 Scopus citations

Abstract

Herein, we report a 3D printable ink made of a peptide-polysaccharide hybrid hydrogel composed of fluorenylmethyloxycarbonyl-diphenylalanine (Fmoc-FF) peptide and TEMPO-oxidized cellulose nanofibrils (ToCNF), synthesized using a pH-dependent sol–gel transition method. The ToCNF suspension is synthesized through the mechanical breakdown of a cellulose pulp using a microfluidizer, followed by its oxidation mediated with 2,2,6,6-tetramethylpiperidine-1-oxyl (TEMPO). The properties of the hybrid inks are compared in the presence (ToCNF/Fmoc-FF-Ca2+) and absence (ToCNF/Fmoc-FF) of the divalent cation Ca2+, which acts as the cross-linker, at two optimized weight ratios (r) of ToCNF and Fmoc-FF (r = 4.5 and 6.5). The rheological measurements show that the yield strength of the ToCNF/Fmoc-FF-Ca2+gel is almost double that of the hydrogel composite without Ca2+ions, especially at the concentration (C) of 10 mM CaCl2. This finding is further verified by 3D gel printing, which produced good quality prints with the cation cross-linked hydrogel. The structural analysis by Field Emission Scanning Electron Microscopy shows that the calcium ions can cross-link the ToCNF and also enhance the self-assembly of Fmoc-FF, which leads to the formation of rigid compact nanofibers even at physiological pH. The electrostatic interaction of the positively charged Ca2+ions onto the negatively charged surface carboxylate groups of ToCNF and Fmoc-FF is analyzed by zeta potential (ζ) measurements. Small-angle X-ray scattering measurements give deeper structural insights into the interaction of Fmoc-FF with ToCNF. Cell responses to the hydrogels are studied in human dermal fibroblasts (NHDFs) in a direct contact test using a live/dead assay and in extract test using Alamar Blue and lactate dehydrogenase assays. The results show that high loading of Fmoc-FF decreases cell viability, while additional cross-linking with calcium reduces this cytotoxic effect.

Original languageEnglish
Pages (from-to)18571-18583
Number of pages13
JournalACS Applied Nano Materials
Volume8
Issue number38
DOIs
StatePublished - 26 Sep 2025

Keywords

  • 3D printing
  • Fmoc-FF
  • Tempo-oxidized CNF
  • cell adhesion
  • cellulose nanofibrils
  • direct ink writing
  • hydrogels
  • nanocellulose

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